scholarly journals Exploring the Limits of Super-Planckian Far-Field Radiative Heat Transfer Using 2D Materials

ACS Photonics ◽  
2018 ◽  
Vol 5 (8) ◽  
pp. 3082-3088 ◽  
Author(s):  
Víctor Fernández-Hurtado ◽  
Antonio I. Fernández-Domínguez ◽  
Johannes Feist ◽  
Francisco J. García-Vidal ◽  
Juan Carlos Cuevas
2018 ◽  
Vol 97 (4) ◽  
Author(s):  
V. Fernández-Hurtado ◽  
A. I. Fernández-Domínguez ◽  
J. Feist ◽  
F. J. García-Vidal ◽  
J. C. Cuevas

Author(s):  
B. K. Liu ◽  
J. M. Zhao ◽  
L. H. Liu

Abstract Radiative heat transfer in particulate system has many applications in industry. Recently, the anomalous heat diffusion was reported for particulate system in near field thermal radiation heat transfer, and the existence of heat super-diffusive regimes was observed and the spread of heat can be described by Levy flight. In this work, attention is paid to investigate whether there is anomalous heat diffusion in far-field radiative heat transfer or not. Specifically, this study is focused on the radiative heat transport of a system, consisting of optically large particles, in the geometric optic range. Those particles are arranged in a linear chain surrounded by reflective walls and all particles are identical and equally spaced. The effect of the boundary type and particle surface emissivity on the heat diffusion is also investigated. The heat diffusion behavior in the far-field is studied based on Monte Carlo ray tracing method and the fractional diffusion equation in one dimension. The result indicates the existence of anomalous heat diffusion in the far-field by analyzing the asymptotic behavior of radiation distribution function (RDF). It’s shown that the distribution of RDF decays in power law and can be divided into two parts: for near the source particle, heat diffusive regime is super-diffusive (according to the analysis of fractional diffusion equation), while for far from the source particle, heat diffusive regime becomes sub-diffusive. Moreover, the kind of boundary type and particle wall emissivity have a significant influence on the heat diffusion of the far-field radiation heat transfer. This work will help the understanding of radiation heat transfer in particulate system in the far-field.


Nature ◽  
2018 ◽  
Vol 561 (7722) ◽  
pp. 216-221 ◽  
Author(s):  
Dakotah Thompson ◽  
Linxiao Zhu ◽  
Rohith Mittapally ◽  
Seid Sadat ◽  
Zhen Xing ◽  
...  

Nature ◽  
2019 ◽  
Vol 567 (7748) ◽  
pp. E12-E12 ◽  
Author(s):  
Dakotah Thompson ◽  
Linxiao Zhu ◽  
Rohith Mittapally ◽  
Seid Sadat ◽  
Zhen Xing ◽  
...  

Author(s):  
Mahmoud Elzouka ◽  
Sidy Ndao

The ability to manipulate heat flow can result in wonderful applications such as thermal logic and memory devices. Thermal logic and memory devices are similar to their electronic counterparts, however, they are powered solely by heat. In addition, thermal logic and memory devices can operate in harsh environments where electronics typically fail. Despite our understanding of various mechanisms of heat transfer, controlling heat (in a sense of switching heat flow on or off) is more challenging than controlling electricity due to the lack of perfect thermal insulators. One possible solution is to control the near-field thermal radiation heat transfer between hot and cold terminals by manipulating the size of the vacuum gap separating the two. Unlike far-field thermal radiation, near-field thermal radiation intensity increases exponentially with decreasing the gap size. There are however challenges in manipulating the nano/micro vacuum gaps to achieve enough contrast in heat transfer between the high and low heat transfer cases. In this paper, we present a prototype of a microdevice with a controllable micro gap of size 3 μm (initial gap size) between the hot and cold terminals; this configuration achieves a contrast in near-field radiative heat transfer at temperatures as high as 600 K. Furthermore, we present numerical analysis for meshed photonic crystals to achieve even higher contrast in radiative heat transfer with enhancement in heat transfer as high as 26 times in comparison to far-field.


AIP Advances ◽  
2018 ◽  
Vol 8 (8) ◽  
pp. 085321 ◽  
Author(s):  
Lixin Ge ◽  
Yuping Cang ◽  
Ke Gong ◽  
Lihai Zhou ◽  
Daqing Yu ◽  
...  

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